Megakaryocyte polyploidization: role in platelet production

被引:24
|
作者
Vainchenker, William [1 ]
Raslova, Hana [1 ]
机构
[1] Univ Paris Sud, Univ Paris Saclay, Equipe Labellisee & Ligue Natl Canc, INSERM,UMR 1170,Gustave Roussy Canc Campus, Villejuif, France
关键词
Endomitosis; megakaryocyte; polyploidization; ENDOMITOTIC CELL-CYCLE; HEMATOPOIETIC STEM-CELLS; MYELOPROLIFERATIVE NEOPLASMS; BONE-MARROW; IN-VITRO; AURORA-B; KINASE; DIFFERENTIATION; EXPRESSION; GENE;
D O I
10.1080/09537104.2019.1667497
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Mammal megakaryocytes (MK) undergo polyploidization during their differentiation. This process leads to a marked increase in the MK size and of their cytoplasm. Contrary to division by classical mitosis, ploidization allows an economical manner to produce platelets as they arise from the fragmentation of the MK cytoplasm. The platelet production in vivo correlates to the entire MK cytoplasm mass that depends both upon the number of MKs and their size. Polyploidization occurs by several rounds of DNA replication with at the end of each round an aborted mitosis at late phase of cytokinesis. As there is also a defect in karyokinesis, MKs are giant cells with a single polylobulated nucleus with a 2(x)N ploidy. However, polyploidization per se does not increase platelet production because it requires a parallel development of MK organelles such as mitochondria, granules and the demarcation membrane system. MK polyploidization is regulated by extrinsic factors, more particularly by thrombopoietin (TPO), which during a platelet stress increases first polyploidization before enhancing the MK number and by transcription factors such as RUNX1, GATA1, and FLI1 that regulate MK differentiation explaining why polyploidization and cytoplasmic maturation are intermingled. MK polyploidization is ontogenically regulated and is markedly altered in malignant myeloid disorders such as acute megakaryoblastic leukemia and myeloproliferative disorders as well as in hereditary thrombocytopenia, more particularly those involving transcription factors or signaling pathways. In addition, MKs arising from progenitors in vitro have a much lower ploidy in vitro than in vivo leading to a low yield of platelet production in vitro. Thus, it is tempting to find approaches to increase MK polyploidization in vitro. However, these approaches require molecules that are able to simultaneously increase MK polyploidization and to induce terminal differentiation. Here, we will focus on the regulation by extrinsic and intrinsic factors of MK polyploidization during development and pathological conditions.
引用
收藏
页码:707 / 716
页数:10
相关论文
共 50 条
  • [1] Identification of a potent small molecule capable of regulating polyploidization, megakaryocyte maturation, and platelet production
    Huang, Nick
    Lou, Mabel
    Liu, Hua
    Avila, Cecilia
    Ma, Yupo
    [J]. JOURNAL OF HEMATOLOGY & ONCOLOGY, 2016, 9
  • [2] Identification of a potent small molecule capable of regulating polyploidization, megakaryocyte maturation, and platelet production
    Nick Huang
    Mabel Lou
    Hua Liu
    Cecilia Avila
    Yupo Ma
    [J]. Journal of Hematology & Oncology, 9
  • [3] Megakaryocyte and polyploidization
    Mazzi, Stefania
    Lordier, Larissa
    Debili, Najet
    Raslova, Hana
    Vainchenker, William
    [J]. EXPERIMENTAL HEMATOLOGY, 2018, 57 : 1 - 13
  • [4] THE ROLE OF INTERLEUKIN-6 IN MEGAKARYOCYTE FORMATION, MEGAKARYOCYTE DEVELOPMENT AND PLATELET PRODUCTION
    WILLIAMS, N
    BERTONCELLO, I
    JACKSON, H
    ARNOLD, J
    KAVNOUDIAS, H
    [J]. CIBA FOUNDATION SYMPOSIA, 1992, 167 : 160 - 173
  • [5] Megakaryocyte development and platelet production
    Deutsch, Varda R.
    Tomer, Aaron
    [J]. BRITISH JOURNAL OF HAEMATOLOGY, 2006, 134 (05) : 453 - 466
  • [6] THE REGULATION OF MEGAKARYOCYTE AND PLATELET PRODUCTION
    MCDONALD, TP
    [J]. INTERNATIONAL JOURNAL OF CELL CLONING, 1989, 7 (03): : 139 - 155
  • [7] ROLE OF GENOMIC IMPRINTING AND GENOTYPE IN MEGAKARYOCYTE POLYPLOIDY DETERMINATION AND IN PLATELET PRODUCTION OF MICE
    MCDONALD, TP
    JACKSON, CW
    [J]. EXPERIMENTAL HEMATOLOGY, 1994, 22 (08) : 828 - 828
  • [8] THE ROLE OF GENOTYPE, GENOMIC IMPRINTING, AND SEX-HORMONES IN PLATELET AND MEGAKARYOCYTE PRODUCTION
    MCDONALD, TP
    JACKSON, CW
    [J]. EXPERIMENTAL HEMATOLOGY, 1994, 22 (10) : 959 - 966
  • [9] Structure-function analysis of the role of megakaryoblastic leukemia 1 in megakaryocyte polyploidization
    Reed, Fiona E.
    Eskow, Nicole M.
    Min, Elizabeth
    Carlino, Maximillian
    Mancuso, Rubia
    Kwon, Nayoung
    Smith, Elenoe C.
    Larsuel, Shannon T.
    Wang, Lin
    Scanlon, Vanessa
    Krause, Diane S.
    [J]. HAEMATOLOGICA, 2022, 107 (12) : 2972 - 2976
  • [10] SET domain containing 2 promotes megakaryocyte polyploidization and platelet generation through methylation of α-tubulin
    Chen, Lei
    Liu, Jingkun
    Chen, Kunying
    Su, Yanxun
    Chen, Yihe
    Lei, Ying
    Si, Jia
    Zhang, Jie
    Zhang, Zhaojun
    Zou, Weiguo
    Zhang, Xiaohui
    Rondina, Matthew T.
    Wang, Qian-Fei
    Li, Yueying
    [J]. JOURNAL OF THROMBOSIS AND HAEMOSTASIS, 2024, 22 (06) : 1727 - 1741